In this study, we present a series of 2-(5-chlorothiophen-2-yl)-1H-benzo-[d]-imidazol-2-yl)-6,7-dihydrobenzo-[d]-imidazo[2,1-b]thiazol-8(5H)-ones (7a–q) through a short, four-step process using readily available starting materials. The synthesis included crucial transformations such as the condensation of 1,3-cyclohexanediones with thiourea, cyclization with acetophenones, and the Vilsmeier-Haack-Arnold reaction. All the compounds were fully characterized and systematically screened for antibacterial, antifungal and antiviral activity. Among all, the compounds 7b (CC50: >1000 µM, IC50 = 4.8 µM, SI = > 63) and 7h (CC50: >1000 µM, IC50 = 5.6 µM, SI = > 54) with 3-methyl and 3-trifluoromethyl groups showed significant virus inhibitory activity against the pandemic influenza virus A/Puerto Rico/8/34 (H1N1) with high selectivity index values and favorable toxicity profiles. The compounds were also evaluated for antibacterial and antifungal activity, exhibited only moderate inhibition. Molecular docking studies have elucidated strong binding interactions with the viral target, the RNA polymerase PB1-PB2 subunits of influenza A virus. ADMET profiles highlighted encouraging drug-like properties and positioned 2-(5-chlorothiophen-2-yl)-1H-benzo-[d]-imidazol-2-yl)-6,7-dihydrobenzo-[d]-imidazo [2,1-b]thiazol-8(5H)-one as a promising candidate for further development as antiviral therapeutics.
With the resurgence of the coronavirus pandemic, the repositioning of FDA-approved drugs against coronovirus and finding alternative strategies for antiviral therapy are both important. We previously identified the viral lipid envelope as a potential target for the prevention and treatment of SARS-CoV-2 infection with plant alkaloids (Shekunov et al., 2021). Here, we investigated the effects of eleven cyclic lipopeptides (CLPs), including well-known antifungal and antibacterial compounds, on the liposome fusion triggered by calcium, polyethylene glycol 8000, and a fragment of SARS-CoV-2 fusion peptide (816-827) by calcein release assays. Differential scanning microcalorimetry of the gel-to-liquid-crystalline and lamellar-to-inverted hexagonal phase transitions and confocal fluorescence microscopy demonstrated the relation of the fusion inhibitory effects of CLPs to al-terations in lipid packing, membrane curvature stress and domain organization. The antiviral effects of CLPs were evaluated in an in vitro Vero-based cell model, and aculeacin A, anidulafugin, iturin A, and mycosubtilin attenuated the cytopathogenicity of SARS-CoV-2 without specific toxicity.
Herein we describe an efficient Lewis acid-mediated one-pot synthesis of 2-substituted 4-aminoquinolines from commercially available anthranilonitriles and substituted acetophenones via a Friedlander type annulation reaction. The protocol avoids any transition metal catalysts, has a wide substrate scope, and exclusively produces 4-aminoquinolines in excellent yields. Screening of all the new compounds for in vitro antiviral activity against influenza virus A/Puerto Rico/8/34 (H1N1) in MDCK cells revealed nine analogues with good virus-inhibiting activity and a favorable toxicity profile. Among them, two compounds, 3a (IC50: 1.7 mu M, SI = 30) and 3l (IC50: 4.0 mu M, SI = 25) with higher potency are the best anti-influenza hit analogues for further structural optimization.
3-{[(1-Methyl-1 H -tetrazol-5-yl)imino]methyl}quinoline-2-thiol and 3-{[(2-methyl-2 H -tetrazol-5-yl)imino]methyl}quinoline-2-thiol were synthesized. The sequence of the thiol-Michael reaction and the (aza)-Morita–Baylis–Hillman reaction yielded 4-[(1-methyl-1 H -tetrazol-5-yl)amino]-2-phenyl-4 H -thiopyrano[2,3- b ]quinoline-3-carbaldehyde, 4-[(2-methyl-2 H -tetrazol-5-yl)amino]-2-phenyl-4 H -thiopyrano[2,3- b ]-quinoline-3-carbaldehyde, and 4-hydroxy-2-phenyl-4 H -thiopyrano[2,3- b ]quinoline-3-carbaldehyde. Cytotoxicity and antiviral activity against the A/Puerto Rico/8/34 (H1N1) influenza virus strain in MDCK cell culture were determined for the obtained compounds. The study showed that the replacement of the hydroxyl group in 4-hydroxy-2-phenyl-4 H -thiopyrano[2,3- b ]quinoline-3-carbaldehyde with a 1-methyl- or 5-amino-2-methyltetrazolyl fragment decreased antiviral activity. At the same time, 3-{[(1-methyl-1 H -tetrazol-5-yl)imino]-methyl}quinoline-2-thiol has a higher activity than 3-{[(2-methyl-2 H -tetrazol-5-yl)imino]methyl}quinoline-2-thiol. This fact indicates a possible relationship between the arrangement of substituents in the tetrazole ring and the antiviral activity of the tested heterocyclic system.
The reaction of 5-aryl-NH-tetrazoles with adamantan-1-ol in concentrated sulfuric acid proceeds regioselectively with the formation of the corresponding 2-adamantyl-5-aryl-2H-tetrazoles. Nitration of these compounds leads to 2-(adamantan-1-yl)-5-(3-nitroaryl)-2Htetrazoles. The structures and composition of the obtained novel 2-adamantyl-5-aryltetrazoles were proven by IR spectroscopy, 1H and 13C NMR spectroscopy, high-resolution mass spectrometry, and also by X-ray structural analysis. According to the simultaneous thermal analysis data, the obtained compounds are thermally stable up to a temperature of about 150°C. In vitro studies have shown that some of the 2-adamantyl-5-aryltetrazoles exhibit moderate inhibitory activity against influenza A (H1N1) virus. The antiviral selectivity index (SI) of 2-[2-(adamantan-1-yl)-2H-tetrazol-5-yl]-6-bromo-4-nitroaniline is significantly higher (SI 11) than that of the reference drug rimantadine (SI 5).
To rationalize the antiviral actions of plant alkaloids, the ability of 20 compounds to inhibit calcium-mediated fusion of lipid vesicles composed of phosphatidylglycerol and cholesterol was investigated using the calcein release assay and dynamic light scattering. Piperine, tabersonine, hordenine, lupinine, quinine, and 3-isobutyl-1-methylxanthine demonstrated the most potent effects (inhibition index greater than 50%). The introduction of phosphatidylcholine into the phosphatidylglycerol/cholesterol mixture led to significant changes in quinine, hordenine, and 3-isobutyl-1-methylxanthine efficiency. Comparison of the fusion inhibitory ability of the tested alkaloids, and the results of the measurements of alkaloid-induced alterations in the physical properties of model membranes indicated a potent relationship between a decrease in the cooperativity of the phase transition of lipids and the ability of alkaloids to prevent calcium-mediated vesicle fusion. In order to use this knowledge to combat the novel coronavirus pandemic, the ability of the most effective compounds to suppress membrane fusion induced by fragments of MERS-CoV and SARS-CoV/SARS-CoV-2 fusion peptides was studied using the calcein release assay and confocal fluorescence microscopy. Piperine was shown to inhibit vesicle fusion mediated by both coronavirus peptides. Moreover, piperine was shown to significantly reduce the titer of SARS-CoV2 progeny in vitro in Vero cells when used in non-toxic concentrations.
Nonannulated tetrazolylpyrimidines in the structure of which the heterocyclic fragments are separated by hydrazinocarbonylmethyl, methylpyrazolyl groups or a sulfur atom were synthesized. Some of these compounds showed moderate in vitro activity against H1N1 subtype of influenza A virus. The selectivity index of the anti-influenza action of {5-[(4,6-dimethylpyrimidin-2-yl)sulfanyl]-1H-tetrazol-1-yl}acetic acid, which has very low cytotoxicity, was twice as high as the selectivity index of the reference drug rimantadine.
The reaction of polyfluomalkyl-containing 2-tolylhydrazinylidene-1,3-diketones with 3-aminopyrazoles depending on their structure can proceed as N,N-cyclization to form 5-R-F- and 7-R-F-regioisomeric pyrazolo [1,5-a]pyrimidines (at that haloform cleavage to non-fluorinated pyrazolo[1,5-a]pyrimidine-7-ones is typical of 7-polyfluoroalkyl-containing isomers) or as C,N-cyclization to give 4-polyfluoroalkylpyrazolo [3,4-b]pyridines. The analogous transformations of non-fluorinated 3-tolylhydrazinylidenepentane-2,4-dione led to pyrazolo [1,5-a] pyrimidines only. Antiviral effect against influenza and Coxsackie viruses, analgesic activity and acute toxicity of some synthesized pyrazoloazines were evaluated.
Influenza and ARVI represent the most numerous and dangerous group of causative agents of respiratory infections human. Aim. Characterization of the antiviral properties of enisamium iodide against human respiratory viruses in in vitro experiments. Materials and methods. In the course of experiments, the cytotoxic properties of enisamium iodide were studied against the cell lines Vero, MA-104, A549, L-41 and HEp-2. The antiviral activity of enisamium iodide was studied using virus yield reduction assay against influenza viruses, parainfluenza virus, respiratory syncytial virus, Coxsackie B3 and Coxsackie B4 viruses, as well as adenoviruses types 5 and 6. Results. The most sensitive to the action of enisamium iodide was the human parainfluenza virus, whose activity decreased by 2.3 orders of magnitude under the action of the drug in A549 cells. Of the cell cultures used, enisamium iodide exhibited the maximum antiviral effect in human lung carcinoma cells A549, where, in its presence, the level of reproduction of adenoviruses of types 5 and 6, Coxsackie viruses B3 and B4, and human parainfluenza virus decreased by an order of magnitude or more. The antiviral activity of enisamium iodide was least manifested in Vero cells. Conclusion. According to the results of in vitro experiments, enisamium iodide can be considered as an antiviral drug with a wide spectrum of activity against human respiratory viruses.
Adamantane-derived aldo- and ketonitrones react with maleimides giving corresponding isoxazolidines. In the case of aldonitrones reactions proceed giving the diastereomeric mixtures. The ratio of isomers is changing during the reaction process due to the reversibility of the cycloaddition reaction. The cytotoxic and virus-inhibiting activity against influenza virus was investigated for selected adducts.
Influenza and ARVIs are the most common forms of infectious respiratory diseases in humans. In this regard, the search and development of means for the prevention and treatment of viral infections is a high priority task. The aim of this study was to assess the mechanisms of the antiviral activity of sage-leaved rock-rose extract (Cistus salviifolius) against the causative agents of influenza and ARVIs in humans. In the course of the study, it was shown that C.salviifolius extract inhibits reproduction of influenza viruses A(H1N1), A (H1N1)pdm09, A(H3N2), A(H5N2), A(H7N9) and influenza B virus. The extract showed maximum virus-inhibiting activity at the early stages of the viral cycle (0–2 hours after infection). C.salviifolius extract significantly reduced the hemagglutinating activity of the virus, and at the same time did not affect the fusogenic properties of viral hemagglutinin. Transmission electron microscopy was used to demonstrate that the cistus extract prevents the absorption of influenza virions on the surface of cells in culture. The inhibitory activity of the extract against other human respiratory viruses, parainfluenza virus and adenovirus, was also shown. The protective activity of C.salviifolius extract was demonstrated when applied intranasally during the experiments on a model of influenza pneumonia in mice. The degree of this activity was in inverse proportion to the time window between the application of the extract and the infection of the animals. The virus, pre-incubated with C.salviifolius extract, did not cause death in the animals. The data obtained indicate that C.salviifolius extract serves as an effective and broad-range means of preventing respiratory viral infections in humans.
An effective technique for one-stage synthesis of new polycyclic nitrogen-containing compounds has been developed. The procedure involves refluxing mixtures of camphoric acid with aliphatic or aromatic diamine without catalysts. In cases where the starting amine has a low boiling point (less than 200 °C), phenol is used as a solvent, as it is the most optimal one for obtaining products with good yields. It has been shown that the use of Lewis acids as catalysts reduces the yield of the reaction products. A set of compounds have been synthesized, which can be attributed to synthetic analogues of alkaloids. In vitro screening for activity influenza virus A was carried out for the obtained compounds. The synthesized quinazoline-like agent 14 has inhibitory activity against different strains of influenza viruses.
Cycloaddition reactions of N-allyl substituted polycyclic derivatives of isoindole-1,3-dione with nitrones proceeds regio- and stereoselectively on the double bond of the N-allyl substituent giving substituted isoxazolidines with good yields. Regioselectivity of the cycloaddition of this dipolarophiles with nitrile oxides depends on the structure of unsaturated hydrocarbon scaffold and the reaction selectively leads to adducts on endocyclic or the double bond of the N-allyl substituent. DFT calculations were used to investigate the reasons of the selectivity.
A series of camphecene and quinolizidine alkaloid (-)-cytisine conjugates has been obtained for the first time using 'click' chemistry methodology. The cytotoxicity and virus-inhibiting activity of compounds were determined against MDCK cells and influenza virus A/Puerto Rico/8/34 (H1N1), correspondingly, in in vitro tests. Based on the results obtained, values of 50 % cytotoxic dose (CC50), 50 % inhibition dose (IC50) and selectivity index (SI) were determined for each compound. It has been shown that the antiviral activity is affected by the length and nature of linkers between cytisine and camphor units. Conjugate 13 ((1R,5S)-3-(6-{4-[(2-{(E)-[(1R,4R)-1,7,7-trimethylbicyclo[2.2.1]heptan-2-ylidene]amino}ethoxy)methyl]-1H-1,2,3-triazol-1-yl}hexyl)-1,2,3,4,5,6-hexahydro-8H-1,5-methanopyrido[1,2-a][1,5]diazocin-8-one), which contains cytisine fragment separated from triazole ring by -C6H12- aliphatic linker, showed the highest activity at relatively low toxicity (CC50=168 mu mol, IC50=8 mu mol, SI=20). Its selectivity index appeared higher than that of reference compound, rimantadine. According to theoretical calculations, the antiviral activity of the lead compound 13 can be explained by its influence on the functioning of neuraminidase.
This study describes synthesis and evaluation of novel 5-Chloro-2-thiophenyl-1,2,3-triazolylmethyldihydroquinolines 7a-o as dual inhibitors of Mycobacterium tuberculosis and influenza virus. Huisgen's [3+2] dipolar cycloaddition of 6-(azidomethyl)-5-chloro-2-(thiophen-2-yl)-7,8-dihydroquinoline 5 with various alkynes 6a-o using sodium ascorbate and copper sulphate gave new dihydroquinoline-1,2,3-triazoles 7a-o in good to excellent yields. The new compounds were evaluated for in vitro antimycobacterial against M. tuberculosis H37Rv (Mtb) and antiviral activity against influenza virus A/Puerto Rico/8/34 (H1N1). Among the fifteen new analogs, compounds 7a (MIC: 3.12 µg/mL), 7j and 7k (MIC: 6.25 µg/mL) were identified as potent antitubercular agents. The virus-inhibiting activity of all the fifteen compounds was found to be moderate, and among them the compound 7l, bearing thiophene moiety appeared the most active with good selectivity index (IC50 = 19.5 µg/mL; SI = 15). The results presented here will help developing newer dual inhibitors of tuberculosis and influenza virus.
Novel derivatives of quinolizidine alkaloid (-)-cytisine were synthesised. ADME properties, cytotoxicity against HEK293 cells and activity against viruses of influenza A/California/07/09(H1N1)pdm09 virus (IAV) and human parainfluenza virus type 3 (HPIV3) were evaluated. It was shown, that 9-carboxamides of methylcytisine (with phenyl and allyl urea's fragments) are most active compounds against IAV probably due to predicted in silico peculiarity of their interactions with the 4R7B active site of IAV neuraminidase. Indexes of selectivity (SI) calculated as ratio of CC50/IC50 of these ureas are 47 and 59 correspondingly. It was also found, that derivatives obtained from allyl isocyanate and (-)-cytisine or 9,11-dibromocytisine are able to inhibit a reproduction of HPIV3 with SI = 58 and 95. Moreover, last compound - (1 R,5R)-N-allyl-9,11-dibromo-8-oxo-1,5,6,8-tetrahydro-2H-1,5-methanopyrido[1,2-a][1,5]diazocine-3(4H)-carboxamide with two bromine atom in 2-pyridone core of starting (-)-cytisine molecule, demonstrated high activity against HPIV3 (SI = 95) and moderate activity against IAV (SI = 16).
In the metadata of the article on SpringerLink the title is incorrect. The title should read Anti-Influenza Activity of Several Caryophyllane Thiosesquiterpenoids